English

Direct frequency-comb-driven Raman transitions in the terahertz range

Quantum Physics 2018-06-21 v2 Atomic Physics

Abstract

We demonstrate the use of a femtosecond frequency comb to coherently drive stimulated Raman transitions between terahertz-spaced atomic energy levels. More specifically, we address the 3d 2D3/23d~^2D_{3/2} and 3d 2D5/23d~^2D_{5/2} fine structure levels of a single trapped 40^{40}Ca+^+ ion and spectroscopically resolve the transition frequency to be νD=1,819,599,021,534±8\nu_D = 1{,}819{,}599{,}021{,}534 \pm 8 Hz. The achieved accuracy is nearly a factor of five better than the previous best Raman spectroscopy, and is currently limited by the stability of our atomic clock reference. Furthermore, the population dynamics of frequency-comb-driven Raman transitions can be fully predicted from the spectral properties of the frequency comb, and Rabi oscillations with a contrast of 99.3(6)\% and millisecond coherence time has been achieved. Importantly, the technique can be easily generalized to transitions in the sub-kHz to tens of THz range and should be applicable for driving, e.g., spin-resolved rovibrational transitions in molecules and hyperfine transitions in highly charged ions.

Keywords

Cite

@article{arxiv.1712.07429,
  title  = {Direct frequency-comb-driven Raman transitions in the terahertz range},
  author = {Cyrille Solaro and Steffen Meyer and Karin Fisher and Michael V. DePalatis and Michael Drewsen},
  journal= {arXiv preprint arXiv:1712.07429},
  year   = {2018}
}

Comments

9 pages, 8 figures

R2 v1 2026-06-22T23:24:25.890Z